Luo Hongxia, Li Shuangjun, Wu Ziyang, Liu Yanbiao, Luo Wei, Li Wei, Zhang Dieqing, Chen Jun, Yang Jianping
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, China.
The Education Ministry Key Lab of Resource Chemistry, Joint International Research Laboratory of Resource Chemistry of Ministry of Education, Shanghai Key Laboratory of Rare Earth Functional Materials, and, Shanghai Frontiers Science Center of Biomimetic Catalysis, Shanghai Normal University, Shanghai, 200234, China.
Adv Mater. 2023 Nov;35(46):e2304695. doi: 10.1002/adma.202304695. Epub 2023 Oct 15.
The electrocatalytic reduction of nitrate (NO ) to nitrogen (N ) is an environmentally friendly approach for efficient N-cycle management (toward a nitrogen-neutral cycle). However, poor catalyst durability and the competitive hydrogen evolution reaction significantly impede its practical application. Interface-chemistry engineering, utilizing the close relationship between the catalyst surface/interface microenvironment and electron/proton transfer process, has facilitated the development of catalysts with high intrinsic activity and physicochemical durability. This study reports the synthesis of a nitrogen-doped carbon-coated rice-like iron nitride (RL-Fe N@NC) electrocatalyst with excellent electrocatalytic nitrate-reduction reaction activity (high N selectivity (≈96%) and NO conversion (≈86%)). According to detailed mechanistic investigations by in situ tests and theoretical calculations, the strong hydrogenation ability of iron nitride and enhanced nitrate enrichment of the system synergistically contribute to the rapid hydrogenation of nitrogen-containing species, increasing the intrinsic activity of the catalyst and reducing the occurrence of the competing hydrogen-evolution side reaction. Moreover, RL-Fe N@NC shows excellent stability, retaining good NO -to-N electrocatalysis activity for more than 40 cycles (one cycle per day). This paper could guide the interfacial design of Fe-based composite nanostructures for electrocatalytic nitrate reduction, facilitating a shift toward nitrogen neutrality.
将硝酸盐(NO₃⁻)电催化还原为氮气(N₂)是一种用于高效氮循环管理(迈向氮中性循环)的环保方法。然而,催化剂耐久性差以及竞争性析氢反应严重阻碍了其实际应用。界面化学工程利用催化剂表面/界面微环境与电子/质子转移过程之间的紧密关系,推动了具有高本征活性和物理化学耐久性的催化剂的开发。本研究报道了一种具有优异电催化硝酸盐还原反应活性(高N₂选择性(≈96%)和NO₃⁻转化率(≈86%))的氮掺杂碳包覆类稻壳状氮化铁(RL-Fe₃N@NC)电催化剂的合成。根据原位测试和理论计算的详细机理研究,氮化铁的强氢化能力和体系中硝酸盐富集的增强协同促进了含氮物种的快速氢化,提高了催化剂的本征活性并减少了竞争性析氢副反应的发生。此外,RL-Fe₃N@NC表现出优异的稳定性,在超过40个循环(每天一个循环)中保持良好的NO₃⁻到N₂的电催化活性。本文可为用于电催化硝酸盐还原的铁基复合纳米结构的界面设计提供指导,推动向氮中性的转变。